Quantification of the electrostatic forces involved in the directed assembly of colloidal nanoparticles by AFM nanoxerography

Directed assembly of 10 nm dodecanethiol stabilized silver nanoparticles in hexane and 14 nm citrate stabilized gold nanoparticles in ethanol was performed by AFM nanoxerography onto charge patterns of both polarities written into poly(methylmethacrylate) thin films. The quasi-neutral silver nanoparticles were grafted on both positive and negative charge patterns while the negatively charged gold nanoparticles were selectively deposited on positive charge patterns only. Numerical simulations were conducted to quantify the magnitude, direction and spatial range of the electrophoretic and dielectrophoretic forces exerted by the charge patterns on these two types of nanoparticles in suspension taken as models. The simulations indicate that the directed assembly of silver nanoparticles on both charge patterns is due to the predominant dielectrophoretic forces, while the selective assembly of gold nanoparticles only on positive charge patterns is due to the predominant electrophoretic forces. The study also suggests that the minimum surface potential of charge patterns required for obtaining effective nanoparticle assembly depends strongly on the charge and polarizability of the nanoparticles and also on the nature of the dispersing solvent. Attractive electrostatic forces of about 2 × 10 − 2 pN in magnitude just above the charged surface appear to be sufficient to trap silver nanoparticles in hexane onto charge patterns and the value is about 2 pN for gold nanoparticles in ethanol, under the present experimental conditions. The numerical simulations used in this work to quantify the electrostatic forces operating in the directed assembly of nanoparticles from suspensions onto charge patterns can easily be extended to any kind of colloid and serve as an effective tool for a better comprehension and prediction of liquid-phase nanoxerography processes.

[1]  E. Palleau,et al.  Coulomb force directed single and binary assembly of nanoparticles from aqueous dispersions by AFM nanoxerography. , 2011, ACS nano.

[2]  E. Palleau,et al.  Numerical simulations for a quantitative analysis of AFM electrostatic nanopatterning on PMMA by Kelvin force microscopy , 2010, Nanotechnology.

[3]  E. Palleau,et al.  How to Control AFM Nanoxerography for the Templated Monolayered Assembly of 2 nm Colloidal Gold Nanoparticles , 2009, IEEE Transactions on Nanotechnology.

[4]  L. Ressier,et al.  Electrostatic nanopatterning of PMMA by AFM charge writing for directed nano-assembly , 2008, Nanotechnology.

[5]  Andreas Stemmer,et al.  Local surface charges direct the deposition of carbon nanotubes and fullerenes into nanoscale patterns. , 2007, Nano letters.

[6]  A. Stemmer,et al.  Selective deposition of functionalized nano-objects by nanoxerography , 2007 .

[7]  Templated Self‐Assembly of Colloidal Nanoparticles Controlled by Electrostatic Nanopatterning on a Si3N4/SiO2/Si Electret , 2006 .

[8]  J. Gu,et al.  Charging process and Coulomb-force-directed printing of nanoparticles with sub-100-nm lateral resolution. , 2005, Nano letters.

[9]  A. Stemmer,et al.  Micro- and nanoxerography in liquids - controlling pattern definition , 2005 .

[10]  H. Jacobs,et al.  Printing nanoparticles from the liquid and gas phases using nanoxerography , 2003 .

[11]  A. Stemmer,et al.  Localized functionalization of surfaces with molecules from solution using electrostatic attraction , 2003 .

[12]  N. Shinya,et al.  Site-Controlled Deposition of Microsized Particles Using an Electrostatic Assembly , 2002 .

[13]  Heiko O. Jacobs,et al.  Approaching nanoxerography: The use of electrostatic forces to position nanoparticles with 100 nm scale resolution , 2002 .

[14]  A. Stemmer,et al.  Maskless nanofabrication using the electrostatic attachment of gold particles to electrically patterned surfaces , 2002 .

[15]  P. Gascoyne,et al.  Particle separation by dielectrophoresis , 2002, Electrophoresis.

[16]  J. Turkevich,et al.  Coagulation of Colloidal Gold , 2002 .

[17]  A. Stemmer,et al.  Attaching silica nanoparticles from suspension onto surface charge patterns generated by a conductive atomic force microscope tip , 2001 .

[18]  G. Whitesides,et al.  Submicrometer Patterning of Charge in Thin-Film Electrets , 2001, Science.

[19]  N. Shinya,et al.  Assembling 100 nm Scale Particles by an Electrostatic Potential Field , 2001 .

[20]  G. Frens Controlled Nucleation for the Regulation of the Particle Size in Monodisperse Gold Suspensions , 1973 .

[21]  J. Hillier,et al.  A study of the nucleation and growth processes in the synthesis of colloidal gold , 1951 .